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Please use this identifier to cite or link to this item: http://hdl.handle.net/20.500.12710/30460
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dc.contributor.authorIapăscurtă, Victor
dc.date.accessioned2025-05-05T11:41:03Z
dc.date.available2025-05-05T11:41:03Z
dc.date.issued2025
dc.identifier.citationIAPĂSCURTĂ, Victor. Agent-based modeling of fluid dynamics in lung tissue engineering. In: Cells and tissues transplantation. Actualities and perspectives. The 3rd edition : The Materials of the National Scientific Conference with international participation dedicated to the 80th anniversary of the founding of Nicolae Testemitanu State University of Medicine and Pharmacy. Chisinau, March 21-22, 2025: [abstracts]. Chişinău: CEP Medicina, 2025, p. 44. ISBN 978-9975-82-413-2.en_US
dc.identifier.isbn978-9975-82-413-2
dc.identifier.urihttp://repository.usmf.md/handle/20.500.12710/30460
dc.description.abstractIntroduction: In tissue engineering for lung applications, understanding and controlling fluid dynamics within engineered constructs is paramount. Agent-based modeling (ABM) offers a powerful framework to simulate complex physiological systems, yet its application to pulmonary edema (PE) in this context remains underexplored. This study presents an innovative ABM, built in NetLogo, to simulate cardiogenic PE (CPE) by modeling extravascular lung water dynamics under hydrostatic pressure (HP) and oncotic pressure (OP). This model can serve as a tool to inform the design of tissueengineered lung constructs by providing insights into fluid management strategies. Materials and Methods: The ABM was developed using NetLogo, employing a simplified Starling equation: Q = k (HP - OP). The model's spatial environment includes capillary, alveolar-capillary membrane (ACM), and alveoli, with agents representing water molecules and macromolecules. Two scenarios were simulated: (1) Normal: HP = 18 mmHg, OP = 25 mmHg, (2) CPE: HP = 22 mmHg, OP = 24 mmHg. Results: In the normal scenario, the model achieved a physiological balance with approximately 200 ml of extravasation cleared. In the CPE scenario, there was significant fluid accumulation (>400 ml by ~40 ticks). Adjusting parameters, such as reducing OP, amplified the edema, demonstrating the model's flexibility. The model is available at: https://modelingcommons.org/browse/one_model/5103#model_tabs_browse_info. Conclusions: This ABM provides a valuable platform for tissue engineers to understand and manipulate fluid dynamics in lung constructs. By simulating the effects of different pressure gradients and permeability, it can guide the development of biomaterials and scaffolds that optimize fluid handling in engineered lung tissues. The model's extensibility allows for future incorporation of additional complexities, such as gas exchange and variable tissue properties, enhancing its utility in both research and practical applications.en_US
dc.language.isoenen_US
dc.publisherCEP Medicinaen_US
dc.relation.ispartofCells and tissues transplantation. Actualities and perspectives. The 3-rd edition. Chisinau, March 21-22, 2025en_US
dc.subjectTissue engineeringen_US
dc.subjectAgent-based modelingen_US
dc.subjectPulmonary edemaen_US
dc.subjectFluid dynamicsen_US
dc.subjectHydrostatic pressureen_US
dc.subjectOncotic pressureen_US
dc.titleAgent-based modeling of fluid dynamics in lung tissue engineeringen_US
dc.typeOtheren_US
Appears in Collections:The Materials of the National Scientific Conference with International Participation „Cells and tissues transplantation. Actualities and perspectives. The 3rd edition” dedicated to the 80th anniversary of the founding of Nicolae Testemitanu State University of Medicine and Pharmacy. Chisinau, March 21-22, 2025: [Abstracts]

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